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Published on: January 26, 2016
Rationally designed PMAP-23 derivatives with enhanced bactericidal and anticancer activity based on the molecular
Hyunhee Lee1, Sung-Heui Shin1,2, Sungtae Yang3,4
1Department of Biomedical Science, College of Medicine, Chosun University, Gwangju, 61452, South Korea.
Abstract:
Antimicrobial peptides (AMPs) are a crucial component of the natural defense system that the host employs to protect itself against invading pathogens. PMAP-23, a cathelicidin-derived AMP, has potent and broad-spectrum antimicrobial activity. Our earlier studies led us to hypothesize that PMAP-23 adopts a dynamic helix-hinge-helix structure, initially attaching to membrane surfaces through the N-helix and subsequently inserting the C-helix into the lipid bilayer. Here, we rationally designed PMAP-NC with increased amphipathicity and hydrophobicity in the N- and C-helix, respectively, based on the hypothesis of the interaction of PMAP-23 with membranes. Compared to the parental PMAP-23, PMAP-NC showed two-eightfold improved bactericidal activity against both Gram-positive and Gram-negative strains with fast killing kinetics. Fluorescence studies demonstrated that PMAP-NC largely disrupted membrane integrity, indicating that efficiency and kinetics of bacterial killing are associated with the membrane permeabilization. Interestingly, PMAP-NC exhibited much better anticancer activity against tumor cells than PMAP-23 but displayed low hemolytic activity against human erythrocytes. Collectively, our findings suggest that PMAP-NC, with the structural arrangement of an amphipathic helix-hinge-hydrophobic helix that plays a critical role in rapid and efficient membrane permeabilization, can be an attractive candidate for novel antimicrobial and/or anticancer drugs.
Insights
Researchers designed PMAP-NC, a novel antimicrobial peptide (AMP), demonstrating enhanced efficacy against bacteria and cancer cells. This peptide rapidly disrupts bacterial membranes, offering potential as a new therapeutic agent.
Area of Science:
- Biochemistry and Molecular Biology
- Infectious Diseases and Microbiology
- Cancer Research
Background:
- Antimicrobial peptides (AMPs) are vital host defense components against pathogens.
- Cathelicidin-derived PMAP-23 exhibits broad-spectrum antimicrobial activity.
- Previous work suggested PMAP-23's helix-hinge-helix structure mediates membrane interaction.
Purpose of the Study:
- To rationally design and synthesize PMAP-NC, enhancing amphipathicity and hydrophobicity.
- To evaluate PMAP-NC's antimicrobial and anticancer activities compared to PMAP-23.
- To investigate the mechanism of PMAP-NC's membrane interaction and disruption.
Main Methods:
- Rational design of PMAP-NC based on PMAP-23's structural hypothesis.
- Assessment of bactericidal activity against Gram-positive and Gram-negative bacteria.
- Fluorescence studies to analyze membrane integrity disruption and hemolytic activity.
Main Results:
- PMAP-NC displayed 2-8 fold improved bactericidal activity with faster kinetics than PMAP-23.
- PMAP-NC significantly disrupted bacterial membrane integrity.
- PMAP-NC showed enhanced anticancer activity with low hemolytic activity.
Conclusions:
- PMAP-NC's amphipathic helix-hinge-hydrophobic helix structure is critical for rapid membrane permeabilization.
- PMAP-NC demonstrates potent antimicrobial and anticancer properties.
- PMAP-NC represents a promising candidate for developing new antimicrobial and anticancer therapeutics.
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